4.6 Article

Effective Removal of Refractory Pollutants through Cinnamic Acid-Modified Wheat Husk Biochar: Experimental and DFT-Based Analysis

Journal

CATALYSTS
Volume 12, Issue 9, Pages -

Publisher

MDPI
DOI: 10.3390/catal12091063

Keywords

wheat husk biochar; cinnamic acid; wastewater treatment; adsorption; DFT

Funding

  1. Higher Education Commission (HEC) in Pakistan (NRPUProject) [16132]
  2. Taif University, Taif, Saudi Arabia [TURSP-2020/01]

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Sorption technologies are crucial for removing refractory pollutants from water. A study investigated the use of wheat husk biochar modified with cinnamic acid (WHB/CA) to collect dangerous organic pollutants. The results showed that WHB/CA exhibited outstanding adsorption capabilities, with chemisorption and monolayer contact as the dominant removal mechanisms.
The removal of refractory pollutants, i.e., methylene blue (MB) and ciprofloxacin (CIP), relies heavily on sorption technologies to address global demands for ongoing access to clean water. Because of the poor adsorbent-pollutant contact, traditional sorption procedures are inefficient. To accomplish this, a wheat husk biochar (WHB), loaded with cinnamic acid, was created using a simple intercalation approach to collect dangerous organic pollutants from an aqueous solution. Batch experiments, detecting technologies, and density functional theory (DFT) calculations were used to investigate the interactions at the wheat husk biochar modified with cinnamic acid (WHB/CA) and water interface to learn more about the removal mechanisms. With MB (96.52%) and CIP (94.03%), the functionalized WHB exhibited outstanding adsorption capabilities, with model fitting results revealing that the adsorption process was chemisorption and monolayer contact. Furthermore, DFT studies were performed to evaluate the interfacial interaction between MB and CIP with the WHB/CA surface. The orbital interaction diagram provided a visual representation of the interaction mechanism. These findings open up a new avenue for researchers to better understand adsorption behavior for the utilization of WHB on an industrial scale.

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